Atomization device capable of rotatably controlling suction
By rotating the control nozzle body, the smoke channel and the smoking channel of the atomizing device can be switched on and off, solving the problem of children inhaling the atomizing device without adult supervision and protecting children's physical and mental health.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2026-03-31
AI Technical Summary
In existing technology, the smoke exhaust port and the smoke outlet port are always connected before and after use, which can affect the physical and mental health of children when they inhale the atomizing device without adult supervision.
By rotating the main body of the control nozzle, the opening and closing of the smoke passage and the smoking passage are controlled, thereby realizing the rotation of the smoke exhaust port and the smoke outlet of the atomizing device. This solves the problem of children inhaling atomizing devices without adult supervision in the existing technology.
To prevent children from inhaling nebulizers without adult supervision and to protect children's physical and mental health.
Smart Images

Figure CN224055349U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of atomization technology, and in particular to an atomization device with rotation-controlled suction. Background Technology
[0002] Currently, in existing atomizing devices, the smoke channel inside the atomizing body used to generate smoke and the smoke extraction channel inside the mouthpiece body used to extract smoke are always connected. Whenever airflow enters the atomizing body during inhalation, smoke will be generated in the smoke channel and enter the user's mouth through the smoke extraction channel. If the smoke channel and the smoke extraction channel remain connected before and after use, children inhaling atomizing devices without adult supervision may experience physical and mental health problems. Utility Model Content
[0003] The purpose of this invention is to provide a rotary-controlled atomizing device that controls the connection or separation of the smoke channel and the smoke inhalation channel by rotating the main body of the mouthpiece. This solves the problem in existing atomizing devices where the exhaust port and the smoke outlet remain connected before and after use, which can affect children's physical and mental health if they inhale the atomizing device without adult supervision.
[0004] The technical solution adopted by this utility model to solve the above-mentioned technical problems is: a rotary controlled atomizing device, including an atomizing body and a mouthpiece body sleeved on the atomizing body. The atomizing body has an oil storage chamber for storing e-liquid and an atomizing core disposed in the oil storage chamber for atomizing e-liquid. The atomizing core has a smoke channel. The atomizing body is provided with a rotating structure and a smoke exhaust hole communicating with the smoke channel. The mouthpiece body has a smoke outlet hole separate from the smoke exhaust hole. The mouthpiece body can rotate clockwise and counterclockwise on the atomizing body through the rotating structure. The smoke exhaust hole is located on the rotation trajectory of the smoke outlet hole and the mouthpiece body. The clockwise or counterclockwise rotation of the mouthpiece body on the atomizing body through the rotating structure can control whether the smoke exhaust hole is connected to or separate from the smoke outlet hole.
[0005] In one embodiment, the mouthpiece body also has a guide groove and a smoke-smoking channel, one end of the guide groove is connected to the smoke outlet, and the other end of the guide groove is connected to the smoke-smoking channel.
[0006] In one embodiment, the atomizing body is further provided with an air inlet that communicates with the flue gas channel, a heating core is provided in the flue gas channel, and an oil inlet corresponding to the heating core is provided on the atomizing core.
[0007] In one embodiment, the atomizing body includes an oil tank, an oil storage chamber, and a rotating structure located at the upper end of the oil tank. A smoke exhaust channel is provided inside the oil tank, and the upper end of the atomizing core is inserted into one end of the smoke exhaust channel, so that the smoke channel communicates with one end of the smoke exhaust channel. The smoke exhaust hole extends from the top of the oil tank to the other end of the smoke exhaust channel, and the smoke exhaust hole communicates with the smoke channel through the smoke exhaust channel.
[0008] In one embodiment, a first rotating groove is provided on one side wall of the upper end of the oil tank, and a second rotating groove is provided on the other side wall of the upper end of the oil tank. A first protrusion is provided in one end of the first rotating groove, and a second protrusion is provided in one end of the second rotating groove. The first rotating groove and the first protrusion, as well as the second rotating groove and the second protrusion, constitute the rotating structure.
[0009] In one embodiment, the atomizing body further includes a sealing plug and a base. The sealing plug is disposed inside the bottom opening of the oil tank, and the base is disposed at the bottom of the oil tank and abuts against the sealing plug. A positioning channel is formed at the top of the sealing plug, and the lower end of the atomizing core is inserted into the positioning channel, so that the lower end of the smoke channel communicates with the positioning channel. An air inlet is formed at the bottom of the base and communicates with the positioning channel. The air inlet communicates with the smoke channel through the positioning channel. The bottom of the base is also provided with a first electrode and a second electrode that are electrically connected to the atomizing core.
[0010] In one embodiment, both the first rotating groove and the second rotating groove are arc-shaped, and the arc length and radius of the first rotating groove and the second rotating groove allow the nozzle body to rotate 90 degrees clockwise and counterclockwise on the atomizing body.
[0011] In one embodiment, the nozzle body includes a nozzle cover and a sealing gasket. The sealing gasket is disposed inside the nozzle cover, and the nozzle cover is fitted onto the upper end of the oil tank. The sealing gasket abuts against the top of the oil tank. The inner wall of the nozzle cover is provided with a first pin extending into the other end of the first rotating groove and a second pin extending into the other end of the second rotating groove. The nozzle cover can rotate clockwise and counterclockwise in the first rotating groove via the first pin and the second pin rotating clockwise and counterclockwise in the second rotating groove, and can rotate clockwise and counterclockwise at the upper end of the oil tank. The first protrusion is located on the rotation trajectory of the first pin and the second protrusion is located on the rotation trajectory of the second pin.
[0012] In one embodiment, the arc length of the first rotating groove and the second rotating groove is 2.64mm-21.1mm; the radius of the first rotating groove and the second rotating groove is 1.68mm-13.5mm.
[0013] In one embodiment, the sealing gasket has a guide groove that is separate from the smoke exhaust hole. The smoke outlet hole passes through the sealing gasket from one end of the bottom wall of the guide groove. The top of the mouthpiece cover has a smoke tube corresponding to the other end of the guide groove. A smoke channel is formed in the smoke tube that communicates with the other end of the guide groove. The smoke channel communicates with the smoke exhaust hole through the guide groove.
[0014] The rotary-controlled atomizing device of this utility model has the following beneficial effects: The rotary-controlled atomizing device of this utility model controls the connection or separation between the exhaust port and the smoke outlet by rotating the main body of the mouthpiece, so as to realize whether the atomizing device can be inhaled or not, thus preventing children from inhaling the atomizing device without adult supervision, thereby affecting children's physical and mental health. Attached Figure Description
[0015] The present invention will now be described in detail with reference to the accompanying drawings, so that the above-mentioned advantages of the present invention become clearer. Among them,
[0016] Figure 1 This is an exploded view of the atomizing device of this utility model;
[0017] Figure 2 This is a three-dimensional schematic diagram of the atomizing device of this utility model;
[0018] Figure 3 This is a front sectional view of the atomizing device of this utility model in use.
[0019] Figure 4 This is a side sectional view of the atomizing device of this utility model in use.
[0020] Figure 5 This is a front sectional view of the atomizing device of this utility model when it is not in use;
[0021] Figure 6 This is a side sectional view of the atomizing device of this utility model when it is not in use;
[0022] Figure 7 This is a schematic diagram showing the disassembled nozzle body and atomizing body of the atomizing device of this utility model;
[0023] Figure 8 This is a schematic diagram showing the disassembled nozzle body and atomizing body of the atomizing device of this utility model;
[0024] Figure 9 This is a diagram showing the airflow and smoke direction when the atomizing device of this utility model is used to smoke. Detailed Implementation
[0025] The following detailed description of the embodiments of this utility model, in conjunction with the accompanying drawings, will provide a thorough understanding of how this utility model uses technical means to solve technical problems and achieve technical effects, enabling its implementation. It should be noted that, provided there is no conflict, the various embodiments and features within them can be combined with each other, and all resulting technical solutions are within the protection scope of this utility model.
[0026] It should be noted that the specification of this utility model contains a large number of technical features distributed across various technical solutions. Listing all possible combinations of technical features (i.e., technical solutions) would make the specification excessively lengthy. To avoid this problem, the various technical features of the utility model described above, the various technical features of the utility model in the following embodiments and examples, and the various technical features of the utility model in the accompanying drawings can be freely combined to form various new technical solutions (all of which are considered to have been described in this specification), unless such a combination of technical features is technically infeasible. For example, in one example, feature A+B+C is described, and in another example, feature A+B+D+E is described. Features C and D are equivalent technical means that serve the same function; technically, only one needs to be used, and they cannot be used simultaneously. Feature E can technically be combined with feature C. Therefore, the solution A+B+C+D should not be considered as described because it is technically infeasible, while the solution A+B+C+E should be considered as described.
[0027] In this utility model, the terms "upper", "lower", "top", "bottom", "inner", "outer", etc. are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing and understanding the technology of this utility model, and are not intended to limit the device or component to have a specific orientation or to be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0028] like Figure 1-8As shown, this utility model provides a rotary controlled atomizing device, including an atomizing body 10 and a mouthpiece body 9 sleeved on the atomizing body 10. The atomizing body 10 has an oil storage chamber 305 for storing e-liquid and an atomizing core 4 for atomizing e-liquid in the oil storage chamber 305. The atomizing core 4 has a smoke channel 401. The atomizing body 10 is provided with a rotating structure and a smoke exhaust hole 307 communicating with the smoke channel 401. The mouthpiece body 9 has a smoke outlet hole 202 separate from the smoke exhaust hole 307. The mouthpiece body 9 can rotate clockwise and counterclockwise on the atomizing body 10 through the rotating structure. The smoke exhaust hole 307 is located on the rotation trajectory of the smoke outlet hole 202 and the mouthpiece body 9. The rotation of the mouthpiece body 9 on the atomizing body 10 through the rotating structure can control whether the smoke exhaust hole 307 is connected to or separate from the smoke outlet hole 202. It should be noted that by rotating the main body 9 of the nozzle, the smoke exhaust hole 307 and the smoke outlet hole 202 are connected or separated, so as to realize whether the atomizing device can be inhaled or not, to prevent children from inhaling the atomizing device without adult supervision, thereby affecting children's physical and mental health.
[0029] In some embodiments, the mouthpiece body 9 also has a guide groove 201 and a smoke passage 102. One end of the guide groove 201 communicates with the smoke outlet 202, and the other end of the guide groove 201 communicates with the smoke passage 102. It should be noted that the guide groove 201 is used to connect the smoke passage 102 and the smoke outlet 202. When the mouthpiece body 9 is rotated to the point where the smoke exhaust hole 307 communicates with the smoke outlet 202, the atomizing core 4 in the atomizing body 10 atomizes the e-liquid and generates smoke, which is then discharged from the smoke exhaust hole 307 and can sequentially enter the user's mouth through the smoke outlet 202, the guide groove 201, and the smoke passage 102 to be inhaled.
[0030] In some embodiments, the atomizing body 10 is further provided with an air inlet 601 communicating with the smoke channel 401. A heating element 403 is provided inside the smoke channel 401, and an oil inlet 402 corresponding to the heating element 403 is provided on the atomizing element 4. The oil inlet 402 is used to guide the e-liquid in the oil storage chamber 305 into the heating element 403. When the heating element 403 is energized, it can heat the e-liquid to produce smoke. The air inlet 601 is used to introduce air into the smoke channel 401 when smoking, and then drive the smoke out.
[0031] In some embodiments, the atomizing body 10 includes an oil tank 3, an oil storage cavity 305 formed within the oil tank 3, a rotating structure disposed at the upper end of the oil tank 3, and a smoke exhaust channel 306 formed within the oil tank 3. The upper end of the atomizing core 4 is inserted into one end of the smoke exhaust channel 306, thereby connecting the smoke passage 401 with one end of the smoke exhaust channel 306. A smoke exhaust hole 307 extends from the top of the oil tank 3 to the other end of the smoke exhaust channel 306, and the smoke exhaust hole 307 communicates with the smoke passage 401 through the smoke exhaust channel 306. The smoke exhaust channel 306 serves to connect the smoke passage 401 and the smoke exhaust hole 307. Simultaneously, because it connects to the upper end of the atomizing core 4, the smoke generated by the heating element 403 heating the e-liquid within the smoke passage 401 can be discharged from the atomizing body 10 through the smoke exhaust channel 306 and the smoke exhaust hole 307.
[0032] In some embodiments, a first rotating groove 301 is formed on one side wall of the upper end of the oil tank 3, and a second rotating groove 302 is formed on the other side wall of the upper end of the oil tank 3. A first protrusion 303 is provided in one end of the first rotating groove 301, and a second protrusion 304 is provided in one end of the second rotating groove 302. The first rotating groove 301, the first protrusion 303, the second rotating groove 302, and the second protrusion 304 constitute a rotating structure. The first rotating groove 301, the first protrusion 303, the second rotating groove 302, and the second protrusion 304 are integrally formed with the oil tank 3 by in-mold injection molding, eliminating the need for machining and saving machining costs.
[0033] In some embodiments, the atomizing body 10 further includes an oil sealing plug 5 and a base 6. The oil sealing plug 5 is disposed in the bottom opening of the oil tank 3, and the base 6 is disposed at the bottom of the oil tank 3 and abuts against the oil sealing plug 5. The top of the oil sealing plug 5 is provided with a positioning channel 501, and the lower end of the atomizing core 4 is inserted into the positioning channel 501, so that the lower end of the smoke channel 401 communicates with the positioning channel 501. The bottom of the base 6 is provided with an air inlet 601 that communicates with the positioning channel 501. The air inlet 601 communicates with the smoke channel 401 through the positioning channel 501. The bottom of the base 6 is also provided with a first electrode 7 and a second electrode 8 that are electrically connected to the atomizing core 4. The sealing plug 5 is made of silicone and is used to seal the oil storage chamber 305. The base 6 is used to seal the bottom of the oil tank 3 and support the sealing plug 5 to prevent the sealing plug 5 from moving down and causing poor sealing effect. The positioning channel 501 is used to connect the air inlet 601 and the smoke channel 401. The positioning channel 501 is also used to connect the lower end of the atomizing core 4. When smoking, the external airflow can enter from the air inlet 601 and then enter the smoke channel 401 through the positioning channel 501. The first electrode 7 and the second electrode 8 are electrically connected to the atomizing core 4. After being powered on, the heating core 403 is heated to heat the e-liquid.
[0034] In some embodiments, both the first rotating groove 301 and the second rotating groove 302 are arc-shaped. The arc length and radius of the first rotating groove 301 and the second rotating groove 302 allow the mouthpiece body 9 to rotate 90 degrees clockwise and counterclockwise on the atomizing body 10. The arc shape of the first rotating groove 301 and the second rotating groove 302 allows the mouthpiece body 9 to rotate clockwise and counterclockwise on the upper end of the oil tank 3 of the atomizing body 10. When the mouthpiece body 9 rotates 90 degrees clockwise on the atomizing body 10, the smoke outlet 202 rotates to communicate with the smoke exhaust port 307. When the mouthpiece body 9 rotates 90 degrees counterclockwise on the atomizing body 10, the smoke outlet 202 rotates to be separated from the smoke exhaust port 307.
[0035] In some embodiments, the nozzle body 9 includes a nozzle cover 1 and a sealing gasket 2. The sealing gasket 2 is disposed inside the nozzle cover 1. The nozzle cover 1 is fitted onto the upper end of the oil tank 3. The sealing gasket 2 abuts against the top of the oil tank 3. The inner wall of the nozzle cover 1 is provided with a first pin 103 extending into the other end of the first rotating groove 301 and a second pin 104 extending into the other end of the second rotating groove 302. The nozzle cover 1 can rotate clockwise and counterclockwise at the upper end of the oil tank 3 by the first pin 103 rotating clockwise and counterclockwise in the first rotating groove 301 and the second pin 104 rotating clockwise and counterclockwise in the second rotating groove 302. The first protrusion 303 is located on the rotation trajectory of the first pin 103 and the second protrusion 304 is located on the rotation trajectory of the second pin 104. The mouthpiece cover 1 is used to cover the upper and lower ends of the oil tank 3. The sealing gasket 2 is used to seal the gap between the inner wall of the mouthpiece cover 1 and the upper and lower ends of the oil tank 3, thereby preventing air and smoke leakage. The first pin 103 and the second pin 104 are respectively locked in the first rotating groove 301 and the second rotating groove 302 to prevent the mouthpiece body 9 from falling off when rotating on the atomizing body 10. At the same time, the first pin 103 and the second pin 104 are also used to lock the mouthpiece body 9 on the first protrusion 303 and the second protrusion 304 respectively after the mouthpiece body 9 is rotated 90 degrees clockwise or counterclockwise to position the mouthpiece body 9, preventing children from easily twisting the mouthpiece body 9 or the mouthpiece body 9 from shifting during smoking.
[0036] In some embodiments, the arc length of the first rotating groove 301 and the second rotating groove 302 is 2.64mm-21.1mm; the radius of the first rotating groove 301 and the second rotating groove 302 is 1.68mm-13.5mm. Specifically, the arc length of the first rotating groove 301 and the second rotating groove 302 can be 2.64mm, 3.52mm, 5.23mm, 10.55mm, or 21.10mm; the radius of the first rotating groove 301 and the second rotating groove 302 can be 1.68mm, 2.25mm, 3.38mm, 6.75mm, or 13.50mm. The arc length and radius of the first rotating groove 301 and the second rotating groove 302 listed above allow the nozzle body 9 to rotate 90 degrees clockwise and counterclockwise on the atomizing body 10. In this embodiment, the arc length of the first rotating groove 301 and the second rotating groove 302 is preferably 10.55mm, and the radius is preferably 6.75mm.
[0037] In some embodiments, the sealing gasket 2 has a guide groove 201 that is separate from the smoke exhaust hole 307. The smoke outlet 202 passes through the sealing gasket 2 from one end of the bottom wall of the guide groove 201. The top of the mouthpiece cover 1 is provided with a smoking tube 101 corresponding to the other end of the guide groove 201. A smoking channel 102 is formed in the smoking tube 101 that communicates with the other end of the guide groove 201. The smoking channel 102 communicates with the smoke exhaust hole 202 through the guide groove 201. The smoking tube 101 is used to hold the mouth in the mouth to smoke. When smoking, the smoke in the smoke channel 401 can be discharged from the smoke exhaust hole 307 through the smoke exhaust channel 306 with the airflow, and then enter the user's mouth to be inhaled through the guide groove 201, the smoke exhaust hole 202 and the smoking channel 102.
[0038] The following detailed description uses preferred embodiments.
[0039] like Figure 1-8As shown, the atomizing device of this utility model includes: a mouthpiece body 9 and an atomizing body 10. The atomizing body 10 includes: an oil tank 3, an atomizing core 4, an oil sealing plug 5, a base 6, a first electrode 7, and a second electrode 8. The oil tank 3 forms an oil storage cavity 305 for storing e-liquid. The atomizing core 4 is installed in the oil storage cavity 305 of the oil tank 3 to atomize the e-liquid in the oil storage cavity 305. A smoke channel 401 is formed within the atomizing core 4 for airflow and smoke exhaust. A heating core 403 is provided within the smoke channel 401 to heat the e-liquid to produce smoke after being powered on. An opening is provided on the atomizing core 4 to connect with the heating core 403. The corresponding oil inlet 402 is used to guide the e-liquid in the oil storage chamber 305 into the heating core 403. The sealing plug 5 is installed in the bottom opening of the oil tank 3 to seal the oil storage chamber 305. The top of the sealing plug 5 has a positioning channel 501 corresponding to the oil storage chamber 305 for connecting the lower end of the atomizing core 4 and for airflow. The lower end of the atomizing core 4 is inserted into the positioning channel 501 to connect and make the positioning channel 501 communicate with the smoke channel 401. The oil tank 3 has a smoke exhaust channel 306 corresponding to the oil storage chamber 305 for connecting the upper end of the atomizing core 4 and for exhausting smoke and atomizing. The upper end of the core 4 is inserted into the lower end of the smoke exhaust channel 306, connecting and making the smoke channel 401 communicate with the smoke exhaust channel 306. The base 6 is installed at the bottom of the oil tank 3 to seal the bottom of the oil tank 3 and prevent the oil plug 5 from moving down. The first electrode 7 and the second electrode 8 are installed at the bottom of the base 6 and electrically connected to the heating core 403 for conductive connection. The bottom of the base 6 has an air inlet 601 that communicates with the positioning channel 501 to allow external airflow to enter and guide the airflow from the positioning channel 501 into the smoke channel 401 to drive the smoke flow. The top of the oil tank 3 has a through-hole that extends to the upper end of the smoke exhaust channel 306. The smoke exhaust hole 307 inside is used to exhaust smoke. The smoke exhaust hole 307 is connected to the smoke passage 401 through the smoke exhaust channel 306. A first rotating groove 301 is provided on one side wall of the upper end of the oil tank 3 for the mouthpiece body 9 to rotate on the atomizing body 10. A second rotating groove 302 is provided on the other side wall of the upper end of the oil tank 3, which is also used for the mouthpiece body 9 to rotate on the atomizing body 10. A first protrusion 303 is provided in one end of the first rotating groove 301 for positioning the mouthpiece body 9. A second protrusion 304 is provided in one end of the second rotating groove 302 for positioning the mouthpiece body 9. All the components are combined together to form the atomizing body 10.
[0040] The mouthpiece body 9 includes a mouthpiece cover 1 and a sealing gasket 2. The sealing gasket 2 is installed inside the mouthpiece cover 1 for sealing. The inner wall of the mouthpiece cover 1 has a first pin 103 and a second pin 104 on both sides for locking in the first rotating groove 301 and the second rotating groove 302 respectively to prevent the mouthpiece body 9 from falling off when rotating on the atomizing body 10. The sealing gasket 2 has a guide groove 201 for guiding airflow and exhausting smoke. One end of the bottom wall of the guide groove 201 has a smoke outlet 202 that passes through the sealing gasket 2 for exhausting smoke and guiding smoke into the guide groove 201. The top of the mouthpiece cover 1 has a smoking tube 101 corresponding to the other end of the guide groove 201 for smoking in the mouth. The smoking tube 101 forms a smoking channel 102 that communicates with the other end of the guide groove 201 for drawing smoke into the mouth. The smoking channel 102 communicates with the smoke outlet 202 through the guide groove 201. All components are combined and cooperate with each other to form the mouthpiece body 9.
[0041] The mouthpiece cover 1 of the mouthpiece body 9 is fitted onto the upper end of the oil tank 3 of the atomizing body 10 to cover the upper and top ends of the oil tank 3. The sealing gasket 2 abuts against the top end of the oil tank 3 to seal the gap between the inner wall of the mouthpiece cover 1 and the upper and top ends of the oil tank 3, thereby preventing air and smoke leakage. One end of the guide groove 201 and the smoke outlet 202 are separated from the smoke exhaust hole 307. The first pin 103 extends into the other end of the first rotating groove 301, and the second pin 104 extends into the other end of the second rotating groove 302. The mouthpiece cover 1 can rotate clockwise and counterclockwise at the upper end of the oil tank 3 by the clockwise and counterclockwise rotation of the first pin 103 in the first rotating groove 301 and the clockwise and counterclockwise rotation of the second pin 104 in the second rotating groove 302. The first protrusion 303 is located on the rotation trajectory of the first pin 103, and the second protrusion 304 is located on the rotation trajectory of the second pin 104. The smoke exhaust port 307 is located on the rotation trajectory of the smoke outlet port 202. When the nozzle cover 1 rotates 90 degrees clockwise at the upper end of the oil tank 3, the smoke outlet port 202 rotates to communicate with the smoke exhaust port 307, thereby drawing out the smoke from the smoke passage 401 through the smoke extraction channel 102, the guide groove 201, and the smoke outlet port 202. When the nozzle cover 1 rotates 90 degrees counterclockwise at the upper end of the oil tank 3, the smoke outlet port 202 rotates to be separated from the smoke exhaust port 307. At this time, the airflow is blocked and the smoke cannot be drawn out of the smoke channel 401 through the smoking channel 102, the guide groove 201, and the smoke outlet 202. When the mouthpiece cover 1 is rotated 90 degrees clockwise or counterclockwise at the upper end of the oil tank 3, the first pin 103 and the second pin 104 can be respectively locked on the first protrusion 303 and the second protrusion 304 to position the mouthpiece cover 1, preventing children from easily twisting the mouthpiece cover 1 or the mouthpiece cover 1 from shifting during smoking.
[0042] like Figure 9As shown in the figure, the airflow and smoke direction of the atomizing device in this embodiment are specifically described. When smoking, the mouthpiece cover 1 is rotated 90 degrees clockwise on the upper end of the oil tank 3, so that the smoke outlet 202 is rotated to a position communicating with the smoke exhaust hole 307. Then, the smoke is inhaled through the smoking tube 101. The external airflow can enter the positioning channel 501 from the air inlet 601 and then into the smoke channel 401. Then, the smoke generated by the heating core 403 heating the e-liquid enters the smoke exhaust channel 306, and then enters the guide groove 201 through the smoke exhaust hole 307 and the smoke outlet 202 in sequence. Finally, it enters the user's mouth through the smoking channel 102 and is inhaled.
[0043] Finally, it should be noted that the above are merely preferred embodiments of this utility model and are not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A rotary control suction atomizing device characterized by, The application relates to an atomizing body and a nozzle body sleeved on the atomizing body, wherein the atomizing body is internally provided with an oil storage cavity capable of storing tobacco tar and an atomizing core capable of atomizing the tobacco tar, the atomizing core is internally provided with a smoke passage, the atomizing body is provided with a rotating structure and a smoke discharge hole communicated with the smoke passage, the nozzle body is internally provided with a smoke outlet hole communicated with the smoke discharge hole, the nozzle body can rotate clockwise and counterclockwise on the atomizing body through the rotating structure, the smoke discharge hole is located on the rotation track of the smoke outlet hole and the nozzle body, and the nozzle body can control the smoke discharge hole to be communicated with or separated from the smoke outlet hole by rotating clockwise or counterclockwise on the atomizing body through the rotating structure.
2. The atomization device of claim 1, wherein, The nozzle body is further internally provided with a flow guide groove and a smoke suction passage, one end of the flow guide groove is communicated with the smoke outlet hole, and the other end of the flow guide groove is communicated with the smoke suction passage.
3. The atomization device of claim 1, wherein, The atomizing body is further provided with an air inlet hole communicated with the smoke passage, the smoke passage is provided with a heating core, and the atomizing core is provided with an oil inlet hole corresponding to the heating core.
4. The atomizing device according to any one of claims 1 to 3, characterized in that The atomizing body comprises an oil bin, the oil storage cavity is formed in the oil bin, the rotating structure is arranged on the upper end of the oil bin, the oil bin is provided with a smoke discharge passage, the upper end of the atomizing core is inserted into one end of the smoke discharge passage, so that the smoke passage is communicated with one end of the smoke discharge passage, the smoke discharge hole penetrates from the top end of the oil bin to the other end of the smoke discharge passage, and the smoke discharge hole is communicated with the smoke passage through the smoke discharge passage.
5. The atomization device of claim 4, wherein, One side wall of the upper end of the oil bin is provided with a first rotating groove, the other side wall of the upper end of the oil bin is provided with a second rotating groove, the first rotating groove is provided with a first protrusion at one end, the second rotating groove is provided with a second protrusion at one end, and the first rotating groove and the first protrusion and the second rotating groove and the second protrusion constitute the rotating structure.
6. The atomization device of claim 4, wherein, The atomizing body further comprises an oil sealing plug and a base, the oil sealing plug is arranged in the opening at the bottom end of the oil bin, the base is arranged at the bottom end of the oil bin and abuts against the oil sealing plug, the top end of the oil sealing plug is provided with a positioning passage, the lower end of the atomizing core is inserted into the positioning passage, so that the lower end of the smoke passage is communicated with the positioning passage, the bottom end of the base is provided with an air inlet hole communicated with the positioning passage, the air inlet hole is communicated with the smoke passage through the positioning passage, and the bottom end of the base is further provided with a first electrode and a second electrode electrically connected with the atomizing core.
7. The atomization device of claim 5, wherein, The first rotating groove and the second rotating groove are in the shape of circular arcs, and the arc length and radius of the first rotating groove and the second rotating groove can enable the nozzle body to rotate 90 degrees clockwise and counterclockwise on the atomizing body.
8. The atomization device of claim 5, wherein, The nozzle body comprises a nozzle cover and a sealing pad, the sealing pad is arranged in the nozzle cover, the nozzle cover is sleeved on the upper end of the oil tank, the sealing pad abuts against the top end of the oil tank, the inner wall of the nozzle cover is provided with a first pin buckle extending into the other end of the first rotating groove and a second pin buckle extending into the other end of the second rotating groove, the nozzle cover rotates clockwise and counterclockwise in the first rotating groove through the first pin buckle and rotates clockwise and counterclockwise in the second rotating groove through the second pin buckle, the upper end of the oil tank can rotate clockwise and counterclockwise, the first protrusion is located on the rotation track of the first pin buckle, and the second protrusion is located on the rotation track of the second pin buckle.
9. The atomization device of claim 7, wherein, The arc length of the first rotating groove and the second rotating groove is 2.64mm-21.1mm; the radius of the first rotating groove and the second rotating groove is 1.68mm-13.5mm.
10. The atomization device of claim 8, wherein, A flow guide groove is arranged on the sealing pad and is separated from the smoke exhaust hole, the smoke exhaust hole penetrates the sealing pad from one end of the groove bottom wall of the flow guide groove, the top end of the nozzle cover is provided with a smoke suction pipe corresponding to the other end of the flow guide groove, a smoke suction channel is formed in the smoke suction pipe and communicates with the other end of the flow guide groove, and the smoke suction channel communicates with the smoke exhaust hole through the flow guide groove.